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Deep learning enhanced Rydberg multifrequency microwave recognition

Physics

Deep learning enhanced Rydberg multifrequency microwave recognition

Z. Liu, L. Zhang, et al.

Discover the revolutionary combination of Rydberg atoms and deep learning that enhances microwave electric field recognition! This innovative approach, developed by Zong-Kai Liu, Li-Hua Zhang, Bang Liu, Zheng-Yuan Zhang, Guang-Can Guo, Dong-Sheng Ding, and Bao-Sen Shi, decodes complex signals while minimizing noise. Get ready to unlock the future of microwave sensing and communication.... show more
Abstract
Recognition of multifrequency microwave (MW) electric fields is challenging because of the complex interference of multifrequency fields in practical applications. Rydberg atom-based measurements for multifrequency MW electric fields is promising in MW radar and MW communications. However, Rydberg atoms are sensitive not only to the MW signal but also to noise from atomic collisions and the environment, meaning that solution of the governing Lindblad master equation of light-atom interactions is complicated by the inclusion of noise and high-order terms. Here, we solve these problems by combining Rydberg atoms with deep learning model, demonstrating that this model uses the sensitivity of the Rydberg atoms while also reducing the impact of noise without solving the master equation. As a proof-of-principle demonstration, the deep learning enhanced Rydberg receiver allows direct decoding of the frequency-division multiplexed signal. This type of sensing technology is expected to benefit Rydberg-based MW fields sensing and communication.
Publisher
Nature Communications
Published On
Apr 14, 2022
Authors
Zong-Kai Liu, Li-Hua Zhang, Bang Liu, Zheng-Yuan Zhang, Guang-Can Guo, Dong-Sheng Ding, Bao-Sen Shi
Tags
Rydberg atoms
deep learning
microwave fields
signal decoding
frequency-division multiplexing
noise reduction
quantum information
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